The invention provides an imaging module disposed on a projection system. The imaging module comprises an extended lens device, which connects to the image outlet of the body of the projection system by a rotation mechanism. By rotating the rotation mechanism, the projection system may optionally project images through the extending lens device onto the screen in two perpendicular directions, of which the image ratio of the two images are reciprocal.
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1. An imaging module for a projection system, the projection system comprising a body and an image outlet formed on the body, the projection system projecting an image from the image outlet of the body along a first direction, the imaging module comprising:
an extended lens device, rotatably connected to the image outlet, the extended lens device receiving the image from the imaging outlet and capable of being rotated from the first direction to one of a second direction and a third direction to selectively project the image onto a screen; wherein any two of the first direction, the second direction and the third direction are substantially perpendicular to each other.
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This application claims priority to Taiwan Patent Application No. 097135346 filed on Sep. 15, 2008, the disclosure of which is incorporated herein by reference in its entirety.
Not applicable.
1. Field of the Invention
The present invention provides an imaging module disposed on a projection system to project an image at an appropriate display ratio.
2. Descriptions of the Related Art
With the advancement of information technology and increase in digital data, digital devices for displaying digital data have also been rapidly developing. For example, projection systems have been created to receive digital data input from an external digital device and project a larger image for easier viewing. In some cases, projection systems may further provide a richer entertainment experience, such as being used to project video games or movie pictures. Thus, projection systems have become popular display apparatuses that are commonly applied to digital devices.
Generally, digital data is set to be displayed at a specific display ratio. Digital data is mostly displayed at a display ratio (i.e., a ratio of a horizontal length to a vertical width of an image corresponding to the digital data) of 4:3 or 16:9. However, depending on the requirements of the user in creating or recording digital data, digital data (especially in the case of an image pattern) transmitted from a digital device often has to be rotated 90° before being played. For example, an original display ratio of 4:3 or 16:9 would need to be changed to a new display ratio of 3:4 or 9:16. But due to the limitation of output modes of digital devices, the length and width of the image pattern will be scaled down at equal ratios, which inevitably compromise the magnified display result of the projection system.
For example, as shown in
It follows from the above description that when an image pattern from an existing digital device is to be rotated 90° before being projected via a projection system, the length and width of the image must be scaled down at equal ratios to keep the original display ratio of the image pattern. However, no effective solutions have been provided to increase the magnification factor of the image. Accordingly, it is important to develop a projection system that provides an increased magnification factor under normal use conditions while still maintaining the original display ratio (mostly of 3:4 or 9:16) of the projected image.
An objective of this invention is to provide an imaging module disposed on a projection system for the projection system to project images with display ratios reciprocal to each other. The projection system has a body and an image outlet formed on the body so the projection system can project an image from the image outlet of the body along a first direction. The imaging module comprises an extended lens device rotatably connected to the image outlet to receive the image therefrom. The extended lens device is further capable of rotating around the first direction with respect to the body to either a second direction or a third direction corresponding to a second direction and a third direction respectively, and selectively projecting the image onto a screen along the second direction or the third direction. The directions are substantially perpendicular to each other.
With the above projection mechanism, images with display ratios reciprocal to each other can be projected along the second direction and the third direction respectively. Hence, such a projection system overcomes the shortcomings and disadvantages of conventional practices. In other words, such a projection system not only project images with common display ratios of 4:3 and 16:9, but also allows the user to preferably obtain images with display ratios of 3:4 and 9:16 and a larger magnification factor.
The detailed technology and preferred embodiments implemented for the subject invention are described in the following paragraphs accompanying the appended drawings for people skilled in this field to well appreciate the features of the claimed invention.
The first embodiment of this invention is a projection system 2, schematic views of which are shown in
The imaging module 23 comprises an extended lens device 231 and a rotation mechanism 233. The rotation mechanism 233 is disposed between the body 21 and the extended lens device 231 so that the extended lens device 231 is rotatably disposed on the image outlet and connected with the body 21. Thus, the extended lens device 231 is adapted to rotate around the first direction 22a between a first and a second position with respect to the body 21. It should be noted that the first position corresponds to a second direction 22b, while the second position corresponds to a third direction 22c. In this way, the extended lens device 231 may receive an image from the image outlet projected along the first direction 22a, and project the image to a screen (not shown) selectively along either the second direction 22b or the third direction 22c for viewing. Any two of the first direction 22a, the second direction 22b and the third direction 22c are substantially perpendicular to each other. Additionally, the image has a first image ratio, a second image ratio and a third image ratio when being projected along the first direction 22a, the second direction 22b and the third direction 22c respectively, in which the first image ratio is substantially equal to either the second or the third image ratios and reciprocal to the other.
In reference to
As shown in
On the other hand, as shown in
However, what is described above is only for purpose of illustration, and the first image ratio of the digital data inputted may be of other values rather than those stated above. As an example, the value of the first image ratio may be inversed from the aforesaid ones. More specifically, if the first image ratio becomes 3:4 instead, then the second image ratio is either of 3:4 or 4:3 while the third image ratio can be another ratio. Similarly, if the first image ratio is 9:16, then the second image ratio is either 9:16 or 16:9 while the third image ratio can be another ratio. Furthermore, various needs for displaying image can be satisfied by changing the length of the screen to accommodate different image ratios.
In other examples, the extended lens device 231 of the imaging module 23 may further be rotated around the first direction 22a by 360° with respect to the body 21. In this case, the extended lens device 231 may project an image along a fourth direction (not shown), which is perpendicular to the first direction 22a and either the second direction 22b or the third direction 22c. For example, the fourth direction is adapted to be opposite to the second direction 22b or the third direction 22c.
Additionally, the profile of the extended lens device is not merely limited to what is described in the first embodiment. In reference to
In this embodiment, besides the difference in profile of the extended lens device 331 from that of the first embodiment, the imaging module 33 is also pivoted to the body 31 via a hinge structure (not shown). With this arrangement, the imaging module 33 is able to move between an operating position and a closed position with respect to the body 31. As shown in
With the imaging module of this invention, the projection system is capable of projecting images selectively along two perpendicular directions by rotating the extended lens device. The images that are projected along the two directions also have image ratios that are reciprocal to each other. Thus, the wide display screen is sufficiently used without having to rotate the body of the projection system or utilize software to scale down the images. As a result, the images may maintain the original image size just by rotating an angle for projection with a large magnification factor. Thus, this invention prevents damage to the bulb due to rotation of the body and improves the heat exchange efficiency by preventing interference with the air flow due to the rotation of the body or from blockage of vent holes. Furthermore, this invention does not need to extend image patterns of certain display ratios to the whole display screen, which would otherwise cause distortion of the images and affect projection quality.
The above disclosure is related to the detailed technical contents and inventive features thereof. People skilled in this field may proceed with a variety of modifications and replacements based on the disclosures and suggestions of the invention as described without departing from the characteristics thereof. Nevertheless, although such modifications and replacements are not fully disclosed in the above descriptions, they have substantially been covered in the following claims as appended.
Patent | Priority | Assignee | Title |
10409145, | Mar 30 2016 | FUJIFILM Corporation | Projector |
10942437, | Sep 23 2016 | FUJIFILM Corporation | Rotatable projection lens and projector |
Patent | Priority | Assignee | Title |
5223870, | Apr 02 1992 | Slidex Corporation | Overhead projector with image direction adjusting device |
JP200290879, | |||
JP200524573, |
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